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Oxidative and Stepwise Grafting of Dopamine Inner-Sphere Redox Couple onto Electrode Material: Electron Transfer Activation of Dopamine

机译:多巴胺内球氧化还原对的氧化和逐步接枝到电极材料上:多巴胺的电子转移活化

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摘要

The immobilization of dopamine, a neurotransmitter, onto macroelectrode and microelectrode surfaces has been performed following two strategies. The first consists of a one-step grafting based on electrochemical oxidation of an amino group in acidic media. The second is a stepwise process starting with electrochemical grafting of diazonium, leading to the attachment of aryl layer bearing an acidic headgroup, followed by chemical coupling leading to immobilized dopamine molecules onto the electrode surface. Electrochemical, infrared (IR) spectroscopy, and X-ray photoelectron spectroscopy (XPS) analyses evidence that both methods are suitable for the immobilization of dopamine onto millimetric and micronic electrodes. The electrochemical responses of modified electrodes demonstrate that the electroactivity of the attached dopamine layer appears unaffected by the nature of the spacer, alkyl or aryl layers, suggesting that the communication, through tunneling, between the attached dopamine and the electrode is possible. More interestingly, the dopamine-modified electrode exhibits electron transfer activation toward dopamine in solution. As a result, not only does the dopamine modified electrode yield a fast electron transfer with lower ΔE_p (30 mV) than the majority of pretreatment procedures but also the ΔE_p is as small as that observed for more complex surface treatments.
机译:按照两种策略将神经递质多巴胺固定在大电极和微电极表面上。首先是基于酸性介质中氨基的电化学氧化的一步接枝。第二个步骤是分步进行的过程,从重氮化合物的电化学接枝开始,导致带有酸性头基的芳基层附着,然后进行化学偶合,从而将多巴胺分子固定在电极表面上。电化学,红外(IR)光谱和X射线光电子能谱(XPS)分析证明,这两种方法均适用于将多巴胺固定在毫米电极和微米电极上。修饰电极的电化学反应表明,附着的多巴胺层的电活性似乎不受间隔物,烷基或芳基层性质的影响,表明通过隧穿在附着的多巴胺和电极之间进行通讯是可能的。更有趣的是,多巴胺修饰的电极对溶液中的多巴胺表现出电子转移活化作用。结果,不仅多巴胺修饰的电极能够以比大多数预处理程序更低的ΔE_p(30 mV)产生快速的电子转移,而且ΔE_p与在更复杂的表面处理中所观察到的一样小。

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